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hdlg_machdep.c revision 1.23.16.2
      1  1.23.16.2    martin /*	$NetBSD: hdlg_machdep.c,v 1.23.16.2 2020/04/13 08:03:43 martin Exp $	*/
      2        1.1    nonaka 
      3        1.1    nonaka /*
      4        1.1    nonaka  * Copyright (c) 2001, 2002, 2003 Wasabi Systems, Inc.
      5        1.1    nonaka  * All rights reserved.
      6        1.1    nonaka  *
      7        1.1    nonaka  * Written by Jason R. Thorpe and Steve C. Woodford for Wasabi Systems, Inc.
      8        1.1    nonaka  *
      9        1.1    nonaka  * Redistribution and use in source and binary forms, with or without
     10        1.1    nonaka  * modification, are permitted provided that the following conditions
     11        1.1    nonaka  * are met:
     12        1.1    nonaka  * 1. Redistributions of source code must retain the above copyright
     13        1.1    nonaka  *    notice, this list of conditions and the following disclaimer.
     14        1.1    nonaka  * 2. Redistributions in binary form must reproduce the above copyright
     15        1.1    nonaka  *    notice, this list of conditions and the following disclaimer in the
     16        1.1    nonaka  *    documentation and/or other materials provided with the distribution.
     17        1.1    nonaka  * 3. All advertising materials mentioning features or use of this software
     18        1.1    nonaka  *    must display the following acknowledgement:
     19        1.1    nonaka  *	This product includes software developed for the NetBSD Project by
     20        1.1    nonaka  *	Wasabi Systems, Inc.
     21        1.1    nonaka  * 4. The name of Wasabi Systems, Inc. may not be used to endorse
     22        1.1    nonaka  *    or promote products derived from this software without specific prior
     23        1.1    nonaka  *    written permission.
     24        1.1    nonaka  *
     25        1.1    nonaka  * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
     26        1.1    nonaka  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     27        1.1    nonaka  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     28        1.1    nonaka  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL WASABI SYSTEMS, INC
     29        1.1    nonaka  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     30        1.1    nonaka  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     31        1.1    nonaka  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     32        1.1    nonaka  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     33        1.1    nonaka  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     34        1.1    nonaka  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     35        1.1    nonaka  * POSSIBILITY OF SUCH DAMAGE.
     36        1.1    nonaka  */
     37        1.1    nonaka 
     38        1.1    nonaka /*
     39        1.1    nonaka  * Copyright (c) 1997,1998 Mark Brinicombe.
     40        1.1    nonaka  * Copyright (c) 1997,1998 Causality Limited.
     41        1.1    nonaka  * All rights reserved.
     42        1.1    nonaka  *
     43        1.1    nonaka  * Redistribution and use in source and binary forms, with or without
     44        1.1    nonaka  * modification, are permitted provided that the following conditions
     45        1.1    nonaka  * are met:
     46        1.1    nonaka  * 1. Redistributions of source code must retain the above copyright
     47        1.1    nonaka  *    notice, this list of conditions and the following disclaimer.
     48        1.1    nonaka  * 2. Redistributions in binary form must reproduce the above copyright
     49        1.1    nonaka  *    notice, this list of conditions and the following disclaimer in the
     50        1.1    nonaka  *    documentation and/or other materials provided with the distribution.
     51        1.1    nonaka  * 3. All advertising materials mentioning features or use of this software
     52        1.1    nonaka  *    must display the following acknowledgement:
     53        1.1    nonaka  *	This product includes software developed by Mark Brinicombe
     54        1.1    nonaka  *	for the NetBSD Project.
     55        1.1    nonaka  * 4. The name of the company nor the name of the author may be used to
     56        1.1    nonaka  *    endorse or promote products derived from this software without specific
     57        1.1    nonaka  *    prior written permission.
     58        1.1    nonaka  *
     59        1.1    nonaka  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR IMPLIED
     60        1.1    nonaka  * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
     61        1.1    nonaka  * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     62        1.1    nonaka  * IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT,
     63        1.1    nonaka  * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
     64        1.1    nonaka  * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
     65        1.1    nonaka  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     66        1.1    nonaka  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     67        1.1    nonaka  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     68        1.1    nonaka  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     69        1.1    nonaka  * SUCH DAMAGE.
     70        1.1    nonaka  *
     71       1.15       wiz  * Machine dependent functions for kernel setup for GigaLANDISK
     72        1.1    nonaka  * using RedBoot firmware.
     73        1.1    nonaka  */
     74        1.1    nonaka 
     75        1.1    nonaka #include <sys/cdefs.h>
     76  1.23.16.2    martin __KERNEL_RCSID(0, "$NetBSD: hdlg_machdep.c,v 1.23.16.2 2020/04/13 08:03:43 martin Exp $");
     77        1.1    nonaka 
     78  1.23.16.1  christos #include "opt_arm_debug.h"
     79  1.23.16.1  christos #include "opt_console.h"
     80        1.1    nonaka #include "opt_ddb.h"
     81        1.1    nonaka #include "opt_kgdb.h"
     82        1.1    nonaka #include "opt_pmap_debug.h"
     83        1.1    nonaka 
     84        1.1    nonaka #include <sys/param.h>
     85        1.1    nonaka #include <sys/device.h>
     86        1.1    nonaka #include <sys/systm.h>
     87        1.1    nonaka #include <sys/kernel.h>
     88        1.1    nonaka #include <sys/exec.h>
     89        1.1    nonaka #include <sys/proc.h>
     90        1.1    nonaka #include <sys/msgbuf.h>
     91        1.1    nonaka #include <sys/reboot.h>
     92        1.1    nonaka #include <sys/termios.h>
     93        1.1    nonaka #include <sys/ksyms.h>
     94       1.21      matt #include <sys/bus.h>
     95       1.21      matt #include <sys/cpu.h>
     96        1.1    nonaka 
     97        1.1    nonaka #include <uvm/uvm_extern.h>
     98        1.1    nonaka 
     99        1.1    nonaka #include <dev/cons.h>
    100        1.1    nonaka 
    101        1.1    nonaka #include <machine/db_machdep.h>
    102        1.1    nonaka #include <ddb/db_sym.h>
    103        1.1    nonaka #include <ddb/db_extern.h>
    104        1.1    nonaka 
    105        1.1    nonaka #include <machine/bootconfig.h>
    106       1.21      matt #include <arm/locore.h>
    107        1.1    nonaka #include <arm/undefined.h>
    108        1.1    nonaka 
    109        1.1    nonaka #include <arm/arm32/machdep.h>
    110        1.1    nonaka 
    111        1.1    nonaka #include <arm/xscale/i80321reg.h>
    112        1.1    nonaka #include <arm/xscale/i80321var.h>
    113        1.1    nonaka 
    114        1.1    nonaka #include <dev/pci/ppbreg.h>
    115        1.1    nonaka 
    116        1.1    nonaka #include <evbarm/hdl_g/hdlgreg.h>
    117        1.1    nonaka #include <evbarm/hdl_g/hdlgvar.h>
    118        1.1    nonaka #include <evbarm/hdl_g/obiovar.h>
    119        1.1    nonaka 
    120        1.1    nonaka #include "ksyms.h"
    121        1.1    nonaka 
    122        1.1    nonaka /* Kernel text starts 2MB in from the bottom of the kernel address space. */
    123        1.1    nonaka #define	KERNEL_TEXT_BASE	(KERNEL_BASE + 0x00200000)
    124        1.1    nonaka #define	KERNEL_VM_BASE		(KERNEL_BASE + 0x01000000)
    125        1.1    nonaka 
    126        1.1    nonaka /*
    127        1.1    nonaka  * The range 0xc1000000 - 0xccffffff is available for kernel VM space
    128        1.1    nonaka  * Core-logic registers and I/O mappings occupy 0xfd000000 - 0xffffffff
    129        1.1    nonaka  */
    130        1.1    nonaka #define KERNEL_VM_SIZE		0x0C000000
    131        1.1    nonaka 
    132        1.1    nonaka BootConfig bootconfig;		/* Boot config storage */
    133        1.1    nonaka char *boot_args = NULL;
    134        1.1    nonaka char *boot_file = NULL;
    135        1.1    nonaka 
    136       1.22      matt vaddr_t physical_start;
    137       1.22      matt vaddr_t physical_freestart;
    138       1.22      matt vaddr_t physical_freeend;
    139       1.22      matt vaddr_t physical_end;
    140        1.1    nonaka u_int free_pages;
    141        1.1    nonaka 
    142        1.1    nonaka /*int debug_flags;*/
    143        1.1    nonaka #ifndef PMAP_STATIC_L1S
    144        1.1    nonaka int max_processes = 64;			/* Default number */
    145        1.1    nonaka #endif	/* !PMAP_STATIC_L1S */
    146        1.1    nonaka 
    147       1.18      matt pv_addr_t minidataclean;
    148       1.18      matt 
    149       1.22      matt paddr_t msgbufphys;
    150        1.1    nonaka 
    151        1.1    nonaka #ifdef PMAP_DEBUG
    152        1.1    nonaka extern int pmap_debug_level;
    153        1.1    nonaka #endif
    154        1.1    nonaka 
    155        1.1    nonaka #define KERNEL_PT_SYS		0	/* L2 table for mapping zero page */
    156        1.1    nonaka 
    157        1.1    nonaka #define KERNEL_PT_KERNEL	1	/* L2 table for mapping kernel */
    158        1.1    nonaka #define	KERNEL_PT_KERNEL_NUM	4
    159        1.1    nonaka 
    160        1.1    nonaka 					/* L2 table for mapping i80321 */
    161        1.1    nonaka #define	KERNEL_PT_IOPXS		(KERNEL_PT_KERNEL + KERNEL_PT_KERNEL_NUM)
    162        1.1    nonaka 
    163        1.1    nonaka 					/* L2 tables for mapping kernel VM */
    164        1.1    nonaka #define KERNEL_PT_VMDATA	(KERNEL_PT_IOPXS + 1)
    165        1.1    nonaka #define	KERNEL_PT_VMDATA_NUM	4	/* start with 16MB of KVM */
    166        1.1    nonaka #define NUM_KERNEL_PTS		(KERNEL_PT_VMDATA + KERNEL_PT_VMDATA_NUM)
    167        1.1    nonaka 
    168        1.1    nonaka pv_addr_t kernel_pt_table[NUM_KERNEL_PTS];
    169        1.1    nonaka 
    170        1.1    nonaka /* Prototypes */
    171        1.1    nonaka void consinit(void);
    172        1.1    nonaka 
    173        1.1    nonaka /* Static device mappings. */
    174        1.1    nonaka static const struct pmap_devmap hdlg_devmap[] = {
    175        1.1    nonaka     /*
    176        1.1    nonaka      * Map the on-board devices VA == PA so that we can access them
    177        1.1    nonaka      * with the MMU on or off.
    178        1.1    nonaka      */
    179        1.1    nonaka     {
    180        1.1    nonaka 	HDLG_OBIO_BASE,
    181        1.1    nonaka 	HDLG_OBIO_BASE,
    182        1.1    nonaka 	HDLG_OBIO_SIZE,
    183        1.1    nonaka 	VM_PROT_READ|VM_PROT_WRITE,
    184        1.1    nonaka 	PTE_NOCACHE,
    185        1.1    nonaka     },
    186        1.1    nonaka 
    187        1.1    nonaka     {
    188        1.1    nonaka 	HDLG_IOW_VBASE,
    189        1.1    nonaka 	VERDE_OUT_XLATE_IO_WIN0_BASE,
    190        1.1    nonaka 	VERDE_OUT_XLATE_IO_WIN_SIZE,
    191        1.1    nonaka 	VM_PROT_READ|VM_PROT_WRITE,
    192        1.1    nonaka 	PTE_NOCACHE,
    193        1.1    nonaka    },
    194        1.1    nonaka 
    195        1.1    nonaka    {
    196        1.1    nonaka 	HDLG_80321_VBASE,
    197        1.1    nonaka 	VERDE_PMMR_BASE,
    198        1.1    nonaka 	VERDE_PMMR_SIZE,
    199        1.1    nonaka 	VM_PROT_READ|VM_PROT_WRITE,
    200        1.1    nonaka 	PTE_NOCACHE,
    201        1.1    nonaka    },
    202        1.1    nonaka 
    203        1.1    nonaka    {
    204        1.1    nonaka 	0,
    205        1.1    nonaka 	0,
    206        1.1    nonaka 	0,
    207        1.1    nonaka 	0,
    208        1.1    nonaka 	0,
    209        1.1    nonaka     }
    210        1.1    nonaka };
    211        1.1    nonaka 
    212        1.1    nonaka static void
    213        1.1    nonaka hardclock_hook(void)
    214        1.1    nonaka {
    215        1.1    nonaka 
    216        1.1    nonaka 	/* Nothing to do */
    217        1.1    nonaka }
    218        1.1    nonaka 
    219        1.1    nonaka /*
    220  1.23.16.2    martin  * vaddr_t initarm(...)
    221        1.1    nonaka  *
    222        1.1    nonaka  * Initial entry point on startup. This gets called before main() is
    223        1.1    nonaka  * entered.
    224        1.1    nonaka  * It should be responsible for setting up everything that must be
    225        1.1    nonaka  * in place when main is called.
    226        1.1    nonaka  * This includes
    227        1.1    nonaka  *   Taking a copy of the boot configuration structure.
    228        1.1    nonaka  *   Initialising the physical console so characters can be printed.
    229        1.1    nonaka  *   Setting up page tables for the kernel
    230        1.1    nonaka  *   Relocating the kernel to the bottom of physical memory
    231        1.1    nonaka  */
    232  1.23.16.2    martin vaddr_t
    233        1.1    nonaka initarm(void *arg)
    234        1.1    nonaka {
    235        1.1    nonaka 	extern vaddr_t xscale_cache_clean_addr;
    236        1.1    nonaka #ifdef DIAGNOSTIC
    237        1.1    nonaka 	extern vsize_t xscale_minidata_clean_size;
    238        1.1    nonaka #endif
    239        1.1    nonaka 	int loop;
    240        1.1    nonaka 	int loop1;
    241        1.1    nonaka 	u_int l1pagetable;
    242        1.1    nonaka 	paddr_t memstart;
    243        1.1    nonaka 	psize_t memsize;
    244        1.1    nonaka 
    245        1.1    nonaka 	/* Calibrate the delay loop. */
    246        1.1    nonaka 	i80321_calibrate_delay();
    247        1.1    nonaka 	i80321_hardclock_hook = hardclock_hook;
    248        1.1    nonaka 
    249        1.1    nonaka 	/*
    250        1.1    nonaka 	 * Since we map the on-board devices VA==PA, and the kernel
    251        1.1    nonaka 	 * is running VA==PA, it's possible for us to initialize
    252        1.1    nonaka 	 * the console now.
    253        1.1    nonaka 	 */
    254        1.1    nonaka 	consinit();
    255        1.1    nonaka 
    256        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    257        1.1    nonaka 	/* Talk to the user */
    258        1.4    nonaka 	printf("\nNetBSD/evbarm (HDL-G) booting ...\n");
    259        1.1    nonaka #endif
    260        1.1    nonaka 
    261        1.1    nonaka 	/*
    262        1.1    nonaka 	 * Heads up ... Setup the CPU / MMU / TLB functions
    263        1.1    nonaka 	 */
    264        1.1    nonaka 	if (set_cpufuncs())
    265        1.1    nonaka 		panic("CPU not recognized!");
    266        1.1    nonaka 
    267        1.1    nonaka 	/*
    268        1.1    nonaka 	 * We are currently running with the MMU enabled and the
    269        1.1    nonaka 	 * entire address space mapped VA==PA, except for the
    270        1.1    nonaka 	 * first 64M of RAM is also double-mapped at 0xc0000000.
    271        1.1    nonaka 	 * There is an L1 page table at 0xa0004000.
    272        1.1    nonaka 	 */
    273        1.1    nonaka 
    274        1.1    nonaka 	/*
    275        1.1    nonaka 	 * Fetch the SDRAM start/size from the i80321 SDRAM configuration
    276        1.1    nonaka 	 * registers.
    277        1.1    nonaka 	 */
    278        1.1    nonaka 	i80321_sdram_bounds(&obio_bs_tag, VERDE_PMMR_BASE + VERDE_MCU_BASE,
    279        1.1    nonaka 	    &memstart, &memsize);
    280        1.1    nonaka 
    281        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    282        1.1    nonaka 	printf("initarm: Configuring system ...\n");
    283        1.1    nonaka #endif
    284        1.1    nonaka 
    285        1.1    nonaka 	/* Fake bootconfig structure for the benefit of pmap.c */
    286        1.3       wiz 	/* XXX must make the memory description h/w independent */
    287        1.1    nonaka 	bootconfig.dramblocks = 1;
    288        1.1    nonaka 	bootconfig.dram[0].address = memstart;
    289        1.1    nonaka 	bootconfig.dram[0].pages = memsize / PAGE_SIZE;
    290        1.1    nonaka 
    291        1.1    nonaka 	/*
    292        1.1    nonaka 	 * Set up the variables that define the availablilty of
    293        1.1    nonaka 	 * physical memory.  For now, we're going to set
    294        1.1    nonaka 	 * physical_freestart to 0xa0200000 (where the kernel
    295        1.1    nonaka 	 * was loaded), and allocate the memory we need downwards.
    296        1.1    nonaka 	 * If we get too close to the L1 table that we set up, we
    297        1.1    nonaka 	 * will panic.  We will update physical_freestart and
    298        1.1    nonaka 	 * physical_freeend later to reflect what pmap_bootstrap()
    299        1.1    nonaka 	 * wants to see.
    300        1.1    nonaka 	 *
    301        1.1    nonaka 	 * XXX pmap_bootstrap() needs an enema.
    302        1.1    nonaka 	 */
    303        1.1    nonaka 	physical_start = bootconfig.dram[0].address;
    304        1.1    nonaka 	physical_end = physical_start + (bootconfig.dram[0].pages * PAGE_SIZE);
    305        1.1    nonaka 
    306        1.1    nonaka 	physical_freestart = 0xa0009000UL;
    307        1.1    nonaka 	physical_freeend = 0xa0200000UL;
    308        1.1    nonaka 
    309        1.1    nonaka 	physmem = (physical_end - physical_start) / PAGE_SIZE;
    310        1.1    nonaka 
    311        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    312        1.1    nonaka 	/* Tell the user about the memory */
    313        1.1    nonaka 	printf("physmemory: %d pages at 0x%08lx -> 0x%08lx\n", physmem,
    314        1.1    nonaka 	    physical_start, physical_end - 1);
    315        1.1    nonaka #endif
    316        1.1    nonaka 
    317        1.1    nonaka 	/*
    318        1.1    nonaka 	 * Okay, the kernel starts 2MB in from the bottom of physical
    319        1.1    nonaka 	 * memory.  We are going to allocate our bootstrap pages downwards
    320        1.1    nonaka 	 * from there.
    321        1.1    nonaka 	 *
    322        1.1    nonaka 	 * We need to allocate some fixed page tables to get the kernel
    323        1.1    nonaka 	 * going.  We allocate one page directory and a number of page
    324        1.1    nonaka 	 * tables and store the physical addresses in the kernel_pt_table
    325        1.1    nonaka 	 * array.
    326        1.1    nonaka 	 *
    327        1.1    nonaka 	 * The kernel page directory must be on a 16K boundary.  The page
    328        1.1    nonaka 	 * tables must be on 4K boundaries.  What we do is allocate the
    329        1.1    nonaka 	 * page directory on the first 16K boundary that we encounter, and
    330        1.1    nonaka 	 * the page tables on 4K boundaries otherwise.  Since we allocate
    331        1.1    nonaka 	 * at least 3 L2 page tables, we are guaranteed to encounter at
    332        1.1    nonaka 	 * least one 16K aligned region.
    333        1.1    nonaka 	 */
    334        1.1    nonaka 
    335        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    336        1.1    nonaka 	printf("Allocating page tables\n");
    337        1.1    nonaka #endif
    338        1.1    nonaka 
    339        1.1    nonaka 	free_pages = (physical_freeend - physical_freestart) / PAGE_SIZE;
    340        1.1    nonaka 
    341        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    342        1.1    nonaka 	printf("freestart = 0x%08lx, free_pages = %d (0x%08x)\n",
    343        1.1    nonaka 	       physical_freestart, free_pages, free_pages);
    344        1.1    nonaka #endif
    345        1.1    nonaka 
    346        1.1    nonaka 	/* Define a macro to simplify memory allocation */
    347        1.1    nonaka #define	valloc_pages(var, np)				\
    348        1.1    nonaka 	alloc_pages((var).pv_pa, (np));			\
    349        1.1    nonaka 	(var).pv_va = KERNEL_BASE + (var).pv_pa - physical_start;
    350        1.1    nonaka 
    351        1.1    nonaka #define alloc_pages(var, np)				\
    352        1.1    nonaka 	physical_freeend -= ((np) * PAGE_SIZE);		\
    353        1.1    nonaka 	if (physical_freeend < physical_freestart)	\
    354        1.1    nonaka 		panic("initarm: out of memory");	\
    355        1.1    nonaka 	(var) = physical_freeend;			\
    356        1.1    nonaka 	free_pages -= (np);				\
    357        1.1    nonaka 	memset((char *)(var), 0, ((np) * PAGE_SIZE));
    358        1.1    nonaka 
    359        1.1    nonaka 	loop1 = 0;
    360        1.1    nonaka 	for (loop = 0; loop <= NUM_KERNEL_PTS; ++loop) {
    361        1.1    nonaka 		/* Are we 16KB aligned for an L1 ? */
    362        1.1    nonaka 		if (((physical_freeend - L1_TABLE_SIZE) & (L1_TABLE_SIZE - 1)) == 0
    363        1.1    nonaka 		    && kernel_l1pt.pv_pa == 0) {
    364        1.1    nonaka 			valloc_pages(kernel_l1pt, L1_TABLE_SIZE / PAGE_SIZE);
    365        1.1    nonaka 		} else {
    366        1.1    nonaka 			valloc_pages(kernel_pt_table[loop1],
    367        1.1    nonaka 			    L2_TABLE_SIZE / PAGE_SIZE);
    368        1.1    nonaka 			++loop1;
    369        1.1    nonaka 		}
    370        1.1    nonaka 	}
    371        1.1    nonaka 
    372        1.1    nonaka 	/* This should never be able to happen but better confirm that. */
    373        1.1    nonaka 	if (!kernel_l1pt.pv_pa || (kernel_l1pt.pv_pa & (L1_TABLE_SIZE-1)) != 0)
    374        1.1    nonaka 		panic("initarm: Failed to align the kernel page directory");
    375        1.1    nonaka 
    376        1.1    nonaka 	/*
    377        1.1    nonaka 	 * Allocate a page for the system page mapped to V0x00000000
    378        1.1    nonaka 	 * This page will just contain the system vectors and can be
    379        1.1    nonaka 	 * shared by all processes.
    380        1.1    nonaka 	 */
    381        1.1    nonaka 	alloc_pages(systempage.pv_pa, 1);
    382        1.1    nonaka 
    383        1.1    nonaka 	/* Allocate stacks for all modes */
    384        1.1    nonaka 	valloc_pages(irqstack, IRQ_STACK_SIZE);
    385        1.1    nonaka 	valloc_pages(abtstack, ABT_STACK_SIZE);
    386        1.1    nonaka 	valloc_pages(undstack, UND_STACK_SIZE);
    387        1.1    nonaka 	valloc_pages(kernelstack, UPAGES);
    388        1.1    nonaka 
    389        1.1    nonaka 	/* Allocate enough pages for cleaning the Mini-Data cache. */
    390        1.1    nonaka 	KASSERT(xscale_minidata_clean_size <= PAGE_SIZE);
    391        1.1    nonaka 	valloc_pages(minidataclean, 1);
    392        1.1    nonaka 
    393        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    394        1.1    nonaka 	printf("IRQ stack: p0x%08lx v0x%08lx\n", irqstack.pv_pa,
    395        1.1    nonaka 	    irqstack.pv_va);
    396        1.1    nonaka 	printf("ABT stack: p0x%08lx v0x%08lx\n", abtstack.pv_pa,
    397        1.1    nonaka 	    abtstack.pv_va);
    398        1.1    nonaka 	printf("UND stack: p0x%08lx v0x%08lx\n", undstack.pv_pa,
    399        1.1    nonaka 	    undstack.pv_va);
    400        1.1    nonaka 	printf("SVC stack: p0x%08lx v0x%08lx\n", kernelstack.pv_pa,
    401        1.1    nonaka 	    kernelstack.pv_va);
    402        1.1    nonaka #endif
    403        1.1    nonaka 
    404        1.1    nonaka 	/*
    405        1.1    nonaka 	 * XXX Defer this to later so that we can reclaim the memory
    406        1.1    nonaka 	 * XXX used by the RedBoot page tables.
    407        1.1    nonaka 	 */
    408        1.1    nonaka 	alloc_pages(msgbufphys, round_page(MSGBUFSIZE) / PAGE_SIZE);
    409        1.1    nonaka 
    410        1.1    nonaka 	/*
    411        1.1    nonaka 	 * Ok we have allocated physical pages for the primary kernel
    412        1.1    nonaka 	 * page tables
    413        1.1    nonaka 	 */
    414        1.1    nonaka 
    415        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    416        1.1    nonaka 	printf("Creating L1 page table at 0x%08lx\n", kernel_l1pt.pv_pa);
    417        1.1    nonaka #endif
    418        1.1    nonaka 
    419        1.1    nonaka 	/*
    420        1.1    nonaka 	 * Now we start construction of the L1 page table
    421        1.1    nonaka 	 * We start by mapping the L2 page tables into the L1.
    422        1.1    nonaka 	 * This means that we can replace L1 mappings later on if necessary
    423        1.1    nonaka 	 */
    424        1.1    nonaka 	l1pagetable = kernel_l1pt.pv_pa;
    425        1.1    nonaka 
    426        1.1    nonaka 	/* Map the L2 pages tables in the L1 page table */
    427        1.1    nonaka 	pmap_link_l2pt(l1pagetable, ARM_VECTORS_HIGH & ~(0x00400000 - 1),
    428        1.1    nonaka 	    &kernel_pt_table[KERNEL_PT_SYS]);
    429        1.1    nonaka 	for (loop = 0; loop < KERNEL_PT_KERNEL_NUM; loop++)
    430        1.1    nonaka 		pmap_link_l2pt(l1pagetable, KERNEL_BASE + loop * 0x00400000,
    431        1.1    nonaka 		    &kernel_pt_table[KERNEL_PT_KERNEL + loop]);
    432        1.1    nonaka 	pmap_link_l2pt(l1pagetable, HDLG_IOPXS_VBASE,
    433        1.1    nonaka 	    &kernel_pt_table[KERNEL_PT_IOPXS]);
    434        1.1    nonaka 	for (loop = 0; loop < KERNEL_PT_VMDATA_NUM; loop++)
    435        1.1    nonaka 		pmap_link_l2pt(l1pagetable, KERNEL_VM_BASE + loop * 0x00400000,
    436        1.1    nonaka 		    &kernel_pt_table[KERNEL_PT_VMDATA + loop]);
    437        1.1    nonaka 
    438        1.1    nonaka 	/* update the top of the kernel VM */
    439        1.1    nonaka 	pmap_curmaxkvaddr =
    440        1.1    nonaka 	    KERNEL_VM_BASE + (KERNEL_PT_VMDATA_NUM * 0x00400000);
    441        1.1    nonaka 
    442        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    443        1.1    nonaka 	printf("Mapping kernel\n");
    444        1.1    nonaka #endif
    445        1.1    nonaka 
    446        1.1    nonaka 	/* Now we fill in the L2 pagetable for the kernel static code/data */
    447        1.1    nonaka 	{
    448        1.1    nonaka 		extern char etext[], _end[];
    449        1.1    nonaka 		size_t textsize = (uintptr_t) etext - KERNEL_TEXT_BASE;
    450        1.1    nonaka 		size_t totalsize = (uintptr_t) _end - KERNEL_TEXT_BASE;
    451        1.1    nonaka 		u_int logical;
    452        1.1    nonaka 
    453        1.1    nonaka 		textsize = (textsize + PGOFSET) & ~PGOFSET;
    454        1.1    nonaka 		totalsize = (totalsize + PGOFSET) & ~PGOFSET;
    455        1.1    nonaka 
    456        1.1    nonaka 		logical = 0x00200000;	/* offset of kernel in RAM */
    457        1.1    nonaka 
    458        1.1    nonaka 		logical += pmap_map_chunk(l1pagetable, KERNEL_BASE + logical,
    459        1.1    nonaka 		    physical_start + logical, textsize,
    460        1.1    nonaka 		    VM_PROT_READ|VM_PROT_WRITE, PTE_CACHE);
    461        1.1    nonaka 		logical += pmap_map_chunk(l1pagetable, KERNEL_BASE + logical,
    462        1.1    nonaka 		    physical_start + logical, totalsize - textsize,
    463        1.1    nonaka 		    VM_PROT_READ|VM_PROT_WRITE, PTE_CACHE);
    464        1.1    nonaka 	}
    465        1.1    nonaka 
    466        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    467        1.1    nonaka 	printf("Constructing L2 page tables\n");
    468        1.1    nonaka #endif
    469        1.1    nonaka 
    470        1.1    nonaka 	/* Map the stack pages */
    471        1.1    nonaka 	pmap_map_chunk(l1pagetable, irqstack.pv_va, irqstack.pv_pa,
    472        1.1    nonaka 	    IRQ_STACK_SIZE * PAGE_SIZE, VM_PROT_READ|VM_PROT_WRITE, PTE_CACHE);
    473        1.1    nonaka 	pmap_map_chunk(l1pagetable, abtstack.pv_va, abtstack.pv_pa,
    474        1.1    nonaka 	    ABT_STACK_SIZE * PAGE_SIZE, VM_PROT_READ|VM_PROT_WRITE, PTE_CACHE);
    475        1.1    nonaka 	pmap_map_chunk(l1pagetable, undstack.pv_va, undstack.pv_pa,
    476        1.1    nonaka 	    UND_STACK_SIZE * PAGE_SIZE, VM_PROT_READ|VM_PROT_WRITE, PTE_CACHE);
    477        1.1    nonaka 	pmap_map_chunk(l1pagetable, kernelstack.pv_va, kernelstack.pv_pa,
    478        1.1    nonaka 	    UPAGES * PAGE_SIZE, VM_PROT_READ|VM_PROT_WRITE, PTE_CACHE);
    479        1.1    nonaka 
    480        1.1    nonaka 	pmap_map_chunk(l1pagetable, kernel_l1pt.pv_va, kernel_l1pt.pv_pa,
    481        1.1    nonaka 	    L1_TABLE_SIZE, VM_PROT_READ|VM_PROT_WRITE, PTE_PAGETABLE);
    482        1.1    nonaka 
    483        1.1    nonaka 	for (loop = 0; loop < NUM_KERNEL_PTS; ++loop) {
    484        1.1    nonaka 		pmap_map_chunk(l1pagetable, kernel_pt_table[loop].pv_va,
    485        1.1    nonaka 		    kernel_pt_table[loop].pv_pa, L2_TABLE_SIZE,
    486        1.1    nonaka 		    VM_PROT_READ|VM_PROT_WRITE, PTE_PAGETABLE);
    487        1.1    nonaka 	}
    488        1.1    nonaka 
    489        1.1    nonaka 	/* Map the Mini-Data cache clean area. */
    490        1.1    nonaka 	xscale_setup_minidata(l1pagetable, minidataclean.pv_va,
    491        1.1    nonaka 	    minidataclean.pv_pa);
    492        1.1    nonaka 
    493        1.1    nonaka 	/* Map the vector page. */
    494        1.1    nonaka 	pmap_map_entry(l1pagetable, ARM_VECTORS_HIGH, systempage.pv_pa,
    495        1.1    nonaka 	    VM_PROT_READ|VM_PROT_WRITE, PTE_CACHE);
    496        1.1    nonaka 
    497        1.1    nonaka 	/* Map the statically mapped devices. */
    498        1.1    nonaka 	pmap_devmap_bootstrap(l1pagetable, hdlg_devmap);
    499        1.1    nonaka 
    500        1.1    nonaka 	/*
    501        1.1    nonaka 	 * Give the XScale global cache clean code an appropriately
    502        1.1    nonaka 	 * sized chunk of unmapped VA space starting at 0xff000000
    503        1.1    nonaka 	 * (our device mappings end before this address).
    504        1.1    nonaka 	 */
    505        1.1    nonaka 	xscale_cache_clean_addr = 0xff000000U;
    506        1.1    nonaka 
    507        1.1    nonaka 	/*
    508        1.1    nonaka 	 * Now we have the real page tables in place so we can switch to them.
    509        1.1    nonaka 	 * Once this is done we will be running with the REAL kernel page
    510        1.1    nonaka 	 * tables.
    511        1.1    nonaka 	 */
    512        1.1    nonaka 
    513        1.1    nonaka 	/*
    514        1.1    nonaka 	 * Update the physical_freestart/physical_freeend/free_pages
    515        1.1    nonaka 	 * variables.
    516        1.1    nonaka 	 */
    517        1.1    nonaka 	{
    518        1.1    nonaka 		extern char _end[];
    519        1.1    nonaka 
    520        1.1    nonaka 		physical_freestart = physical_start +
    521        1.1    nonaka 		    (((((uintptr_t) _end) + PGOFSET) & ~PGOFSET) -
    522        1.1    nonaka 		     KERNEL_BASE);
    523        1.1    nonaka 		physical_freeend = physical_end;
    524        1.1    nonaka 		free_pages =
    525        1.1    nonaka 		    (physical_freeend - physical_freestart) / PAGE_SIZE;
    526        1.1    nonaka 	}
    527        1.1    nonaka 
    528        1.1    nonaka 	/* Switch tables */
    529        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    530        1.1    nonaka 	printf("freestart = 0x%08lx, free_pages = %d (0x%x)\n",
    531        1.1    nonaka 	       physical_freestart, free_pages, free_pages);
    532        1.1    nonaka 	printf("switching to new L1 page table  @%#lx...", kernel_l1pt.pv_pa);
    533        1.1    nonaka #endif
    534        1.1    nonaka 	cpu_domains((DOMAIN_CLIENT << (PMAP_DOMAIN_KERNEL*2)) | DOMAIN_CLIENT);
    535       1.20      matt 	cpu_setttb(kernel_l1pt.pv_pa, true);
    536        1.1    nonaka 	cpu_tlb_flushID();
    537        1.1    nonaka 	cpu_domains(DOMAIN_CLIENT << (PMAP_DOMAIN_KERNEL*2));
    538        1.1    nonaka 
    539        1.1    nonaka 	/*
    540        1.1    nonaka 	 * Moved from cpu_startup() as data_abort_handler() references
    541        1.1    nonaka 	 * this during uvm init
    542        1.1    nonaka 	 */
    543       1.12     rmind 	uvm_lwp_setuarea(&lwp0, kernelstack.pv_va);
    544        1.1    nonaka 
    545        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    546        1.1    nonaka 	printf("done!\n");
    547        1.1    nonaka #endif
    548        1.1    nonaka 
    549        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    550        1.1    nonaka 	printf("bootstrap done.\n");
    551        1.1    nonaka #endif
    552        1.1    nonaka 
    553        1.1    nonaka 	arm32_vector_init(ARM_VECTORS_HIGH, ARM_VEC_ALL);
    554        1.1    nonaka 
    555        1.1    nonaka 	/*
    556        1.1    nonaka 	 * Pages were allocated during the secondary bootstrap for the
    557        1.1    nonaka 	 * stacks for different CPU modes.
    558        1.1    nonaka 	 * We must now set the r13 registers in the different CPU modes to
    559        1.1    nonaka 	 * point to these stacks.
    560        1.1    nonaka 	 * Since the ARM stacks use STMFD etc. we must set r13 to the top end
    561        1.1    nonaka 	 * of the stack memory.
    562        1.1    nonaka 	 */
    563        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    564        1.1    nonaka 	printf("init subsystems: stacks ");
    565        1.1    nonaka #endif
    566        1.1    nonaka 
    567        1.1    nonaka 	set_stackptr(PSR_IRQ32_MODE,
    568        1.1    nonaka 	    irqstack.pv_va + IRQ_STACK_SIZE * PAGE_SIZE);
    569        1.1    nonaka 	set_stackptr(PSR_ABT32_MODE,
    570        1.1    nonaka 	    abtstack.pv_va + ABT_STACK_SIZE * PAGE_SIZE);
    571        1.1    nonaka 	set_stackptr(PSR_UND32_MODE,
    572        1.1    nonaka 	    undstack.pv_va + UND_STACK_SIZE * PAGE_SIZE);
    573        1.1    nonaka 
    574        1.1    nonaka 	/*
    575        1.1    nonaka 	 * Well we should set a data abort handler.
    576        1.1    nonaka 	 * Once things get going this will change as we will need a proper
    577        1.1    nonaka 	 * handler.
    578        1.1    nonaka 	 * Until then we will use a handler that just panics but tells us
    579        1.1    nonaka 	 * why.
    580        1.1    nonaka 	 * Initialisation of the vectors will just panic on a data abort.
    581        1.1    nonaka 	 * This just fills in a slightly better one.
    582        1.1    nonaka 	 */
    583        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    584        1.1    nonaka 	printf("vectors ");
    585        1.1    nonaka #endif
    586        1.1    nonaka 	data_abort_handler_address = (u_int)data_abort_handler;
    587        1.1    nonaka 	prefetch_abort_handler_address = (u_int)prefetch_abort_handler;
    588        1.1    nonaka 	undefined_handler_address = (u_int)undefinedinstruction_bounce;
    589        1.1    nonaka 
    590        1.1    nonaka 	/* Initialise the undefined instruction handlers */
    591        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    592        1.1    nonaka 	printf("undefined ");
    593        1.1    nonaka #endif
    594        1.1    nonaka 	undefined_init();
    595        1.1    nonaka 
    596        1.1    nonaka 	/* Load memory into UVM. */
    597        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    598        1.1    nonaka 	printf("page ");
    599        1.1    nonaka #endif
    600       1.23    cherry 	uvm_md_init();
    601        1.1    nonaka 	uvm_page_physload(atop(physical_freestart), atop(physical_freeend),
    602        1.1    nonaka 	    atop(physical_freestart), atop(physical_freeend),
    603        1.1    nonaka 	    VM_FREELIST_DEFAULT);
    604        1.1    nonaka 
    605  1.23.16.1  christos 	/* Boot strap pmap telling it where managed kernel virtual memory is */
    606        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    607        1.1    nonaka 	printf("pmap ");
    608        1.1    nonaka #endif
    609        1.6      matt 	pmap_bootstrap(KERNEL_VM_BASE, KERNEL_VM_BASE + KERNEL_VM_SIZE);
    610        1.1    nonaka 
    611        1.1    nonaka 	/* Setup the IRQ system */
    612        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    613        1.1    nonaka 	printf("irq ");
    614        1.1    nonaka #endif
    615        1.1    nonaka 	i80321_intr_init();
    616        1.1    nonaka 
    617        1.1    nonaka #ifdef VERBOSE_INIT_ARM
    618        1.1    nonaka 	printf("done.\n");
    619        1.1    nonaka #endif
    620        1.1    nonaka 
    621        1.1    nonaka #ifdef BOOTHOWTO
    622        1.1    nonaka 	boothowto = BOOTHOWTO;
    623        1.1    nonaka #endif
    624        1.1    nonaka 
    625        1.1    nonaka #ifdef DDB
    626        1.1    nonaka 	db_machine_init();
    627        1.1    nonaka 	if (boothowto & RB_KDB)
    628        1.1    nonaka 		Debugger();
    629        1.1    nonaka #endif
    630        1.1    nonaka 
    631        1.1    nonaka 	/* We return the new stack pointer address */
    632  1.23.16.2    martin 	return kernelstack.pv_va + USPACE_SVC_STACK_TOP;
    633        1.1    nonaka }
    634        1.1    nonaka 
    635        1.1    nonaka /*
    636        1.1    nonaka  * void cpu_reboot(int howto, char *bootstr)
    637        1.1    nonaka  *
    638        1.1    nonaka  * Reboots the system
    639        1.1    nonaka  *
    640        1.1    nonaka  * Deal with any syncing, unmounting, dumping and shutdown hooks,
    641        1.1    nonaka  * then reset the CPU.
    642        1.1    nonaka  */
    643        1.1    nonaka void
    644        1.1    nonaka cpu_reboot(int howto, char *bootstr)
    645        1.1    nonaka {
    646        1.1    nonaka 
    647        1.1    nonaka 	/*
    648        1.1    nonaka 	 * If we are still cold then hit the air brakes
    649        1.1    nonaka 	 * and crash to earth fast
    650        1.1    nonaka 	 */
    651        1.1    nonaka 	if (cold) {
    652        1.1    nonaka 		*(volatile uint8_t *)HDLG_LEDCTRL |= LEDCTRL_STAT_RED;
    653        1.1    nonaka 		howto |= RB_HALT;
    654        1.1    nonaka 		goto haltsys;
    655        1.1    nonaka 	}
    656        1.1    nonaka 
    657        1.1    nonaka 	/* Disable console buffering */
    658        1.1    nonaka 
    659        1.1    nonaka 	/*
    660        1.1    nonaka 	 * If RB_NOSYNC was not specified sync the discs.
    661        1.1    nonaka 	 * Note: Unless cold is set to 1 here, syslogd will die during the
    662        1.1    nonaka 	 * unmount.  It looks like syslogd is getting woken up only to find
    663        1.1    nonaka 	 * that it cannot page part of the binary in as the filesystem has
    664        1.1    nonaka 	 * been unmounted.
    665        1.1    nonaka 	 */
    666        1.1    nonaka 	if ((howto & RB_NOSYNC) == 0) {
    667        1.1    nonaka 		bootsync();
    668        1.1    nonaka 		/*resettodr();*/
    669        1.1    nonaka 	}
    670        1.1    nonaka 
    671        1.1    nonaka 	/* wait 1s */
    672        1.1    nonaka 	delay(1 * 1000 * 1000);
    673        1.1    nonaka 
    674        1.1    nonaka 	/* Say NO to interrupts */
    675        1.1    nonaka 	splhigh();
    676        1.1    nonaka 
    677        1.1    nonaka 	/* Do a dump if requested. */
    678        1.1    nonaka 	if ((howto & (RB_DUMP | RB_HALT)) == RB_DUMP) {
    679        1.1    nonaka 		dumpsys();
    680        1.1    nonaka 	}
    681        1.1    nonaka 
    682        1.1    nonaka haltsys:
    683        1.1    nonaka 	/* Run any shutdown hooks */
    684        1.1    nonaka 	doshutdownhooks();
    685        1.1    nonaka 
    686        1.7    dyoung 	pmf_system_shutdown(boothowto);
    687        1.7    dyoung 
    688        1.1    nonaka 	/* Make sure IRQ's are disabled */
    689        1.1    nonaka 	IRQdisable;
    690        1.1    nonaka 
    691        1.1    nonaka 	if (howto & RB_HALT) {
    692        1.1    nonaka 		*(volatile uint8_t *)HDLG_PWRMNG = PWRMNG_POWOFF;
    693        1.1    nonaka 		delay(3 * 1000 * 1000);	/* wait 3s */
    694        1.1    nonaka 
    695        1.1    nonaka 		printf("SHUTDOWN FAILED!\n");
    696        1.1    nonaka 		printf("The operating system has halted.\n");
    697        1.1    nonaka 		printf("Please press any key to reboot.\n\n");
    698        1.1    nonaka 		cngetc();
    699        1.1    nonaka 	}
    700        1.1    nonaka 
    701        1.1    nonaka 	printf("rebooting...\n\r");
    702        1.1    nonaka 
    703        1.1    nonaka 	(void)disable_interrupts(I32_bit|F32_bit);
    704        1.1    nonaka 	cpu_idcache_wbinv_all();
    705        1.1    nonaka 	cpu_drain_writebuf();
    706        1.1    nonaka 
    707        1.1    nonaka 	*(volatile uint8_t *)HDLG_PWRMNG = PWRMNG_RESET;
    708        1.1    nonaka 	delay(1 * 1000 * 1000);	/* wait 1s */
    709        1.1    nonaka 
    710        1.1    nonaka 	/* ...and if that didn't work, just croak. */
    711        1.1    nonaka 	printf("RESET FAILED!\n");
    712        1.1    nonaka 	for (;;) {
    713        1.1    nonaka 		continue;
    714        1.1    nonaka 	}
    715        1.1    nonaka }
    716        1.1    nonaka 
    717        1.1    nonaka /*
    718        1.1    nonaka  * console
    719        1.1    nonaka  */
    720        1.1    nonaka #include "com.h"
    721        1.1    nonaka #if NCOM > 0
    722        1.1    nonaka #include <dev/ic/comreg.h>
    723        1.1    nonaka #include <dev/ic/comvar.h>
    724        1.1    nonaka #endif
    725        1.1    nonaka 
    726        1.1    nonaka /*
    727        1.1    nonaka  * Define the default console speed for the board.  This is generally
    728        1.1    nonaka  * what the firmware provided with the board defaults to.
    729        1.1    nonaka  */
    730        1.1    nonaka #ifndef CONSPEED
    731        1.1    nonaka #define CONSPEED B115200
    732        1.1    nonaka #endif /* ! CONSPEED */
    733        1.1    nonaka 
    734        1.1    nonaka #ifndef CONUNIT
    735        1.1    nonaka #define	CONUNIT	0
    736        1.1    nonaka #endif
    737        1.1    nonaka 
    738        1.1    nonaka #ifndef CONMODE
    739        1.1    nonaka #define CONMODE ((TTYDEF_CFLAG & ~(CSIZE | CSTOPB | PARENB)) | CS8) /* 8N1 */
    740        1.1    nonaka #endif
    741        1.1    nonaka 
    742        1.1    nonaka int comcnspeed = CONSPEED;
    743        1.1    nonaka int comcnmode = CONMODE;
    744        1.1    nonaka int comcnunit = CONUNIT;
    745        1.1    nonaka 
    746        1.1    nonaka #if KGDB
    747        1.1    nonaka #ifndef KGDB_DEVNAME
    748        1.1    nonaka #error Must define KGDB_DEVNAME
    749        1.1    nonaka #endif
    750        1.1    nonaka const char kgdb_devname[] = KGDB_DEVNAME;
    751        1.1    nonaka 
    752        1.1    nonaka #ifndef KGDB_DEVADDR
    753        1.1    nonaka #error Must define KGDB_DEVADDR
    754        1.1    nonaka #endif
    755        1.1    nonaka unsigned long kgdb_devaddr = KGDB_DEVADDR;
    756        1.1    nonaka 
    757        1.1    nonaka #ifndef KGDB_DEVRATE
    758        1.1    nonaka #define KGDB_DEVRATE	CONSPEED
    759        1.1    nonaka #endif
    760        1.1    nonaka int kgdb_devrate = KGDB_DEVRATE;
    761        1.1    nonaka 
    762        1.1    nonaka #ifndef KGDB_DEVMODE
    763        1.1    nonaka #define KGDB_DEVMODE	CONMODE
    764        1.1    nonaka #endif
    765        1.1    nonaka int kgdb_devmode = KGDB_DEVMODE;
    766        1.1    nonaka #endif /* KGDB */
    767        1.1    nonaka 
    768        1.1    nonaka void
    769        1.1    nonaka consinit(void)
    770        1.1    nonaka {
    771        1.1    nonaka 	static const bus_addr_t comcnaddrs[] = {
    772        1.1    nonaka 		HDLG_UART1,		/* com0 */
    773        1.1    nonaka 	};
    774        1.1    nonaka 	static int consinit_called;
    775        1.1    nonaka 
    776        1.1    nonaka 	if (consinit_called)
    777        1.1    nonaka 		return;
    778        1.1    nonaka 	consinit_called = 1;
    779        1.1    nonaka 
    780        1.1    nonaka 	/*
    781        1.1    nonaka 	 * Console devices are mapped VA==PA.  Our devmap reflects
    782        1.1    nonaka 	 * this, so register it now so drivers can map the console
    783        1.1    nonaka 	 * device.
    784        1.1    nonaka 	 */
    785        1.1    nonaka 	pmap_devmap_register(hdlg_devmap);
    786        1.1    nonaka 
    787        1.1    nonaka #if NCOM > 0
    788        1.1    nonaka 	if (comcnattach(&obio_bs_tag, comcnaddrs[comcnunit], comcnspeed,
    789        1.1    nonaka 	    COM_FREQ, COM_TYPE_NORMAL, comcnmode))
    790        1.1    nonaka 		panic("can't init serial console @%lx", comcnaddrs[comcnunit]);
    791        1.1    nonaka #else
    792        1.1    nonaka 	panic("serial console @%lx not configured", comcnaddrs[comcnunit]);
    793        1.1    nonaka #endif
    794        1.1    nonaka #if KGDB
    795        1.1    nonaka #if NCOM > 0
    796        1.1    nonaka 	if (strcmp(kgdb_devname, "com") == 0) {
    797        1.1    nonaka 		com_kgdb_attach(&obio_bs_tag, kgdb_devaddr, kgdb_devrate,
    798        1.1    nonaka 				COM_FREQ, COM_TYPE_NORMAL, kgdb_devmode);
    799        1.1    nonaka 	}
    800        1.1    nonaka #endif	/* NCOM > 0 */
    801        1.1    nonaka #endif	/* KGDB */
    802        1.1    nonaka }
    803